Devices, systems, and methods for computer-assisted navigation and/or robot-assisted surgery. navigable instrumentation, which are capable of being navigated by a surgeon using the surgical robot system, allow for the navigated movement of instruments or other surgical devices. The instruments may be suitable for procedures involving navigated and/or robotic total knee arthroplasty, for example.

Patent
   11877807
Priority
Jul 10 2020
Filed
Jul 10 2020
Issued
Jan 23 2024
Expiry
Jan 20 2042
Extension
559 days
Assg.orig
Entity
Large
0
690
currently ok
1. A system for computer-assisted navigation during surgery, the system comprising:
a robotic navigation system including a computer, a display coupled to the computer, and a camera coupled to the computer and configured to detect tracking markers;
a first dynamic reference base including a first reference array with a plurality of tracking markers, the first dynamic reference base configured to attach to and track a first bone;
a second dynamic reference base including a second reference array with a plurality of tracking markers, the second dynamic reference base configured to attach to and track a second bone; and
a navigable stylus including an elongate body defining a longitudinal axis, a third reference array attached to a proximal portion of the elongate body and having a plurality of tracking markers, and wherein the robotic navigation system is adapted to determine a position of a surgical instrument attached to the stylus using only the third reference array regardless of which surgical instrument is attached to the navigable stylus
wherein a plurality of surgical instruments configured to connect to the stylus, wherein the stylus includes a plane checker,
wherein the plane checker includes a collar and a foot, wherein the collar includes a longitudinal opening configured to receive the universal quick-connect attachment tip, and the foot includes a U-shaped plate with a flat bottom surface configured to be placed on a resection plane to return an angulation and/or cut depth to the robotic navigation system.
7. A system for computer-assisted navigation during surgery, the system comprising:
a robotic navigation system including a computer, a display coupled to the computer, and a camera coupled to the computer and configured to detect tracking markers;
a first dynamic reference base including a first reference array having a plurality of tracking markers trackable by the camera, the first dynamic reference base configured to attach to and track a first bone;
a second dynamic reference base including a second reference array with a plurality of tracking markers trackable by the camera, the second dynamic reference base configured to attach to and track a second bone; and
a navigable stylus including:
an elongate body defining a longitudinal axis;
a third reference array disposed at a proximal portion of the elongate body and having a plurality of tracking markers trackable by the camera, the third reference array including an array frame and a shaft extending distally from the array frame, wherein three of the third reference array tracking markers are attached to the array frame and one of the third reference array tracking markers is distally spaced from the three third reference array tracking markers and attached to the shaft; and
wherein the robotic navigation system is adapted to determine a position of the surgical instrument attached to the stylus using only the third reference array regardless of which surgical instrument is attached to the navigable stylus
wherein a plurality of surgical instruments configured to connect to the stylus, wherein the stylus includes a plane checker,
wherein the plane checker includes a collar and a foot, wherein the collar includes a longitudinal opening configured to receive the universal quick-connect attachment tip, and the foot includes a U-shaped plate with a flat bottom surface configured to be placed on a resection plane to return an angulation and/or cut depth to the robotic navigation system.
2. The system of claim 1, wherein the plane checker is free to rotate relative to a longitudinal axis of the stylus, thereby allowing quick reorientation of the third reference array.
3. The system of claim 1, wherein the stylus is configured for landmark localization and point acquisition.
4. The system of claim 3, wherein once the stylus is on a landmark or point of interest, rotation of the stylus by a threshold rotation is captured by the robotic navigation system, thereby capturing the landmark or point of interest by the robotic navigation system.
5. The system of claim 4, wherein the threshold rotation is at least 30°.
6. The system of claim 3, wherein one tracking marker associated with the third reference array is physically movable relative to the other tracking markers, and once the stylus is on a landmark or point of interest, the robotic navigation system detects movement of the one tracking marker relative to the other tracking markers and captures the landmark or point of interest.
8. The system of claim 7, wherein the longitudinal axis of the elongate body is different from a longitudinal axis of the shaft.
9. The system of claim 8, further comprising a connection shaft attached between the elongate body and the shaft, the connection shaft positioned at an angle to the elongate body.
10. The system of claim 7, wherein the third reference array is immovably attached to the elongate body such that a position of all of the third reference array tracking markers is fixed and non-movable regardless of which surgical instrument is attached to the navigable stylus.

The present disclosure relates to medical devices and systems, and more particularly, to navigated surgical instruments for use during surgical procedures.

There are a number of surgical interventions requiring osteotomy, e.g., cutting an anatomical structure, such as a bone, along a target plane. A total knee arthroplasty (TKA) may involve cutting both the femoral epiphysis and tibial epiphysis to remove the damaged bone and cartilage and allow for installation of a knee prosthesis.

Currently in TKA surgeries, the patient satisfaction rate may only be about 80%. This is low in comparison to some other types of orthopedic surgeries, such as for hip arthroplasty where patient satisfaction is typically about 95%. These satisfaction rates have remained principally unchanged over several decades despite innovations in new implant designs, custom cutting template solutions, customized implants, and the like. This suggests that there may be problems with TKA and other orthopedic surgeries that have not been addressed by previous medical procedures and related innovations.

Computer-assisted surgery (CAS) including navigation and/or robotic surgical systems may utilize position recognition systems, which determine the position of and track a particular object in 3-dimensions (3D). In navigation and/or robot-assisted surgeries, certain objects, such as surgical instruments, need to be tracked with a high degree of precision as the instrument is being positioned and moved by the surgeon and/or by the robot, for example. There is also a need to provide improved instrumentation for use with navigated and/or robot-assisted surgeries.

To meet this and other needs, and in view of its purposes, the present application provides devices, systems, instruments, and methods for performing orthopedic operations, such as a total knee arthroplasty (TKA). A surgical robotic system and/or navigation system may be provided which navigates one or more instruments and/or assists a user with one or more surgical procedures. Navigable instrumentation, which includes instruments capable of being navigated, and navigation software allow for navigation of the instruments or other surgical devices. The system allows for locating anatomical structures in open or minimally invasive (MIS) procedures and navigation of surgical instruments and other devices throughout the procedure.

According to one embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system, first and second dynamic reference bases, and a navigable stylus. The robotic navigation system may include a computer, a display, and a camera configured to detect one or more tracking markers. The first dynamic reference base may include a first reference array with a first plurality of tracking markers, and the first dynamic reference base may be configured to attach to and track a first bone. The second dynamic reference base may include a second reference array with a second plurality of tracking markers, and the second dynamic reference base may be configured to attach to and track a second bone. The navigable stylus may include a third reference array with a third plurality of tracking markers and a universal quick-connect attachment tip configured to quickly attach the stylus to one or more instruments and return a position to the robotic navigation system. When used during a total knee arthroplasty, the first bone may be a femur and the second bone may be a tibia or vice versa. The femur and tibia may be positioned in flexion or extension during the procedure.

The instrument may be a posterior tibial wall hook or a plane checker, for example. The posterior tibial wall hook may include a collar and a hook. The collar may include a longitudinal opening configured to receive the universal tip, and the hook may be configured to localize a tibial wall during the total knee arthroplasty. The plane checker may include a collar and a foot. The collar may include a longitudinal opening configured to receive the universal tip, and the foot may include a U-shaped plate with a flat bottom surface configured to be placed on a resection plane to return an angulation and/or cut depth to the robotic navigation system. The instrument may be free to rotate relative to a longitudinal axis of the stylus, thereby allowing quick reorientation of the third reference array, for example, to facilitate line of sight with the camera.

According to another embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system, first and second dynamic reference bases, and one or more surveillance markers. For example, a first surveillance marker may be configured to attach to a first bone (one of the femur or tibia), and a second surveillance marker may be configured to attach to a second bone (the other femur or tibia). The surveillance marker may include a body including a fastener (e.g., a bone pin) terminating at a distal tip and a single tracking marker on top of the surveillance marker. The surveillance marker may include a verification divot integrated into the body of the surveillance marker. The verification divot may be configured to verify navigational integrity of the system by placing a tip of a separate instrument (e.g., the stylus) into the verification divot of the surveillance marker.

According to another embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system, first and second dynamic reference bases, and one or more virtual landmarks. For example, a first virtual landmark may be configured to attach to the first bone and a second virtual landmark may be configured to attach to the second bone. The virtual landmark may include a cortical bone screw with a verification divot, for example. The virtual landmark may be configured to verify navigational integrity of the system by placing a tip of a separate instrument (e.g., the stylus) into the verification divot of the virtual landmark.

According to yet another embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system and one or more dynamic reference bases configured to attach to and track bone. The dynamic reference base may include a single surveillance marker. A distance between the reference array of the dynamic reference base and the surveillance marker is stored by the system. If the dynamic reference base and/or surveillance marker is inadvertently moved, a change in distance and/or movement is identified by the system, thereby altering the user to the disruption.

According to yet another embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system, first and second dynamic reference bases, and a navigable plane checker. The plane checker may include a body with a reference array including a plurality of tracking markers, a shaft extending from the body, and a foot at a distal end of the shaft. When used during a knee procedure, the plane checker may be placed against the resection to ensure that the angulation and/or location of the resection is correct.

According to yet another embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system, first and second dynamic reference bases, and a navigable stylus configured for landmark localization and/or point acquisition. When the stylus is on a landmark or point of interest, the stylus may be rotated by a threshold rotation (e.g., at least 30°). The threshold rotation may be captured by the robotic navigation system, thereby capturing the landmark or point of interest by the robotic navigation system. In another embodiment, one tracking marker associated with the reference array of the stylus may be physically movable relative to the other tracking markers. When the stylus is on a landmark or point of interest, the robotic navigation system detects the movement of the one tracking marker relative to the other tracking markers and captures the landmark or point of interest.

According to yet another embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system, first and second dynamic reference bases, and a tensor including a body with a pair of independent superior distraction paddles, an inferior distraction paddle, a shaft connected to a knob configured to move the superior distraction paddles relative to the inferior distraction paddle, and a spring positioned around the shaft between the body and the knob. The tensor may be configured to provide a distraction force between the tibia and the femur. For example, rotation of the distraction knob may translate the superior distraction paddles outwardly and away from the inferior distraction paddle, thereby providing a gap between the superior and inferior distraction paddles. The tensor may include a pivotable ligament balance indicator positioned on the body of the tensor. The first superior distraction paddle may be connected to a first end of the ligament balance indicator with a first rod, and the second superior distraction paddle may be connected to the opposite end of the ligament balance indicator with a second rod. When distracted, for example, during a knee procedure, the tensor is configured to apply a distraction force FDISTRACTION against the inferior distraction paddle, a force FLCL (lateral collateral ligament) against the first superior distraction paddle, and a force FMCL (medial collateral ligament) against the second superior distraction paddle. When the ligaments are in balance where FLCL=FMCL, the ligament balance indicator indicates the balance, for example, by showing the indicator in a horizontal position. When the ligaments are not in balance where FLCL<FMCL or FLCL>FMCL, then the ligament balance indicator indicates the imbalance, for example, by showing the indicator in a sloped, inclined, or slanted position. The indicator may also indicate the amount or degree of imbalance for each respective force.

According to yet another embodiment, a system for computer-assisted navigation during surgery includes a robotic navigation system and one or more modular dynamic reference bases. The modular dynamic reference base may include a reference array with a plurality of tracking markers, an integrated bridge and pin guide, and one or more fasteners. Each of the plurality of tracking markers may be positioned within a protective shield configured to prevent loss of navigation. The bridge may include a first opening aligned with a first pin guide and a second opening aligned with a second pin guide. First and second fasteners may be receivable through the bridge and pin guides for securing the dynamic reference base to bone. The reference array may include a rectangular frame with a cross brace, and a tracking marker placed at each corner of the rectangular frame within each respective shield. The reference array may be configured to rotate about two axes, for example. The array may be able to rotate about a longitudinal axis of the bridge and/or about an axis perpendicular to the bridge. After adjustment along one or both of the axes, the reference array may be locked into position with one or more locking screws. If desired, an extension arm may be used to increase positioning options for the reference array. The bridge may temporarily attach to a removable handle for installation. The modular components of the dynamic reference base may reduce the number of instruments used throughout the procedure.

According to yet another embodiment, a method of installing the modular dynamic reference base may include one or more of the following in any suitable order: (1) making incision(s) into the patient; (2) attaching a handle to an integrated bridge and pin guide; (3) inserting the bridge in the incision until the bridge contacts cortical bone; (4) driving one or more bone pins through the bridge and pin guide; (5) locking the bridge to the pins, for example, using a locking screw; (6) removing the handle from the bridge; (7) attaching the reference array to the bridge; (8) optionally, attaching an extension between the reference array and the bridge to facilitate more positioning options for the reference array; (9) adjusting the orientation of the reference array, for example, along one or two axes; and (10) locking the final position of the reference array relative to the bridge via one or more locking screws.

Also provided are kits including navigable instruments and components of varying types and sizes, implants, fasteners or anchors, k-wires, insertion tools, and other components for performing the procedure.

A more complete understanding of the present invention, and the attendant advantages and features thereof, will be more readily understood by reference to the following detailed description when considered in conjunction with the accompanying drawings, wherein:

FIG. 1 shows a femur and tibia with a dynamic reference base attached to each bone and a stylus with a universal reference element according to one embodiment;

FIG. 2 illustrates a surgical robotic and/or navigation system in accordance with one embodiment;

FIG. 3 illustrates a medical operation in which the surgical robot and camera system are positioned around a patient;

FIGS. 4A-4C illustrate embodiments of a stylus with a universal reference element, a plane checker instrument attached to the stylus, and a posterior tibial wall hook attached to the stylus;

FIGS. 5A-5B show uses for the stylus with the tibia wall hook and plane checker attachment, respectively;

FIG. 6 shows a resected femur and resected tibia and a stylus according to one embodiment;

FIGS. 7A-7B illustrate embodiments of one or more surveillance markers that may be used to maintain navigation integrity;

FIG. 8 is an example of a landmark check using the surveillance marker and a stylus;

FIGS. 9A-9B illustrate embodiments of one or more virtual landmarks using a stylus;

FIG. 10 is an embodiment of a dynamic reference base with an integrated surveillance marker;

FIGS. 11A-11B show an embodiment of a plane checker;

FIGS. 12A-12B illustrate embodiments of the stylus that allow for landmark and/or point capture without the need for depressing the foot pedal of the robot during the operation;

FIG. 13 illustrates an embodiment of a tensor instrument for use during flexion of the femur and tibia;

FIG. 14 shows an embodiment of the tensor instrument;

FIG. 15 illustrates the tensor for use during extension of the femur and tibia;

FIG. 16 is an example of the tensor with ligament balance;

FIG. 17 is an illustration of a femur and tibia with a dynamic reference base attached to each bone;

FIGS. 18A-18B show an embodiment of a modular dynamic reference base with a removeable handle for installing the dynamic reference base;

FIGS. 19A-19C depict inserting an integrated bridge and pin guide of the dynamic reference base with the attached handle, driving pins through the bridge and pin guide, and locking the pins to the bridge with a locking element;

FIGS. 20A-20C depict the dynamic reference base with the handle removed, attaching the reference array, adjusting the position and/or orientation of the reference array, and locking the final position of the reference array;

FIG. 21 shows an embodiment of the dynamic reference base with an extension arm between the bridge and the reference array; and

FIGS. 22A-22B show an embodiment of the bone pin which may be used to fixate the dynamic reference base to the bone.

During a knee replacement, knee arthroplasty, or total knee arthroplasty (TKA), one or more implants may be used to cap the ends of the femur and/or tibia that form the knee joint. The knee includes the femur or thighbone of the upper leg, the tibia or shin bone of the lower leg, and the patella or knee cap. A TKA may be desirable when osteoarthritis cause breakdown of joint cartilage and/or one or more bones in the knee, rheumatoid arthritis causes inflammation of the synovial membrane, or trauma causes damage to the bone and/or cartilage of the knee. Although a TKA is exemplified herein, it will be appreciated that other orthopedic or other surgical procedures may utilize the devices and systems described herein. In order to improve surgical outcomes, a surgical navigation and/or robotic system may be used to navigate one or more instruments and/or assist the surgeon with one or more surgical procedures.

Referring now to FIG. 1, a system or procedure for conducting one or more steps in a knee arthroplasty is shown. The femur 4 and tibia 6 are shown with a patient tracking device or dynamic reference base 26 attached to each bone. The dynamic reference base 26 tracks the patient's anatomy throughout the course of the operation. The dynamic reference base 26 may be configured to be tracked by a surgical robot and/or navigation system 10, for example, as shown in FIG. 2. The surgical robot and/or navigation system 10 may include, for example, a surgical robot 12, one or more robot arms 14, a base 16 including a computer platform, a display or monitor 20 (and/or optional wireless tablet, headset, etc.), an end-effector 22, and one or more tracking markers 18. The end effector 22 may be configured to secure a guide tube, access instrument, or other tool suitable for performing one or more steps in the orthopedic procedure. In one embodiment shown in FIG. 2, an access instrument 34 (e.g., a retractor) is attached to the end-effector 22 with an articulating arm 24, and in an alternative embodiment shown in FIG. 3, an instrument holder for securing a surgical saw 36, for example, configured to oscillate a saw blade for cutting bone, is coupled to the end-effector 22. It will be appreciated that a suitable instrument or device may be connected to the end-effector 22 for control by robot 12.

In navigated and/or robot-assisted surgical procedures, one or more instruments may be tracked using a reference element, array, or dynamic reference array 28, 42, 94. The reference array 28, 42, 94 may include one or tracking markers 18, which are attached or attachable to the instrument and allow for the tracking system 10 to detect and localize the position of the instrument in 3D space. The computer platform in combination with the camera tracking system or other 3D localization system are configured to track in real-time the pose (e.g., positions and rotational orientations) of the reference arrays 28, 42, 94. The tracking of 3D coordinates of the reference array 28, 42, 94 may allow the surgical system 10 to determine the pose of the reference array 28, 42, 94 in any multidimensional space in relation to the target anatomical structure of the patient 2.

The surgical robot system 10 may include one or more patient tracking devices or dynamic reference bases 26, 130 including one or more tracking markers 18, which are adapted to be secured directly to the patient 2 (e.g., to the bone of the patient 2). In the embodiment shown in FIG. 1, a first patient tracking device or first dynamic reference base 26 is secured to the femur 4 and a second patient tracking device or second dynamic reference base 26 is secure to the tibia 6 of the patient 2. In this manner, the system 10 is able to track the femur 4 and tibia 6 throughout the surgical operation.

The surgical robot system 10 may also utilize a camera 30, for example, positioned on a camera stand 32. The camera stand 32 can have any suitable configuration to move, orient, and support the camera 30 in a desired position. The camera 30 may include any suitable camera or cameras, such as one or more infrared cameras (e.g., bifocal or stereophotogrammetric cameras), able to identify, for example, active and/or passive tracking markers 18 in a given measurement volume viewable from the perspective of the camera 30. The camera 30 may scan the given measurement volume and detect the light that comes from the markers 18 in order to identify and determine the position of the markers 18 in three-dimensions. For example, active markers 18 may include infrared-emitting markers that are activated by an electrical signal (e.g., infrared light emitting diodes (LEDs)), and passive markers 18 may include retro-reflective markers that reflect infrared light (e.g., they reflect incoming IR radiation into the direction of the incoming light), for example, emitted by illuminators on the camera 30 or other suitable device.

The surgical robot 12 is able to control the translation and orientation of the end-effector 22. The robot 10 may be able to move end-effector 22 along x-, y-, and z-axes, for example. The end-effector 22 can be configured for selective rotation about one or more of the x, y-, and z-axis, and a Z Frame axis (such that one or more of the Euler Angles (e.g., roll, pitch, and/or yaw) associated with end-effector 22 can be selectively controlled). In some exemplary embodiments, selective control of the translation and orientation of end-effector 22 can permit performance of medical procedures with significantly improved accuracy.

The robotic positioning system 12 includes one or more computer controlled robotic arms 14 to assist surgeons in planning the position of one or more instruments relative to pre-operative and/or intraoperative patient images. The system 10 may include 2D & 3D imaging software that allows for preoperative planning, navigation, and guidance through dynamic reference arrays, navigated instruments and camera for the placement of instruments, orthopedic devices, or other devices. Further details of surgical robotic and/or navigation systems can be found, for example, in U.S. Pat. No. 8,257,360, U.S. patent publication No. 2019/0021795, and U.S. patent publication No. 2017/0239007, which are all incorporated herein by reference in their entireties for all purposes.

Turning now to FIGS. 4A-4C, embodiments of a universal stylus instrument or stylus 40 is shown. In navigated and/or robot-assisted surgical procedures, it may be common for several instruments to be tracked. If the user wishes to track different instruments, several different reference elements or arrays may be used with each having a different configuration. These unique configurations communicate to the navigation system 10 that a new instrument is being used and redefine its location in 3D space. Thus, in order to track many instruments, many corresponding reference elements are needed, which adds to the cost and complexity as the user is constantly reaching for and configuring different reference elements.

According to one embodiment, the stylus 40 is used as a universal reference element. The stylus 40 may be plugged into several different instruments to make each navigable, thereby eliminating the need for many different reference elements. As best seen in FIG. 4A, the stylus 40 may include an array 42 with a plurality of markers 18 at a proximal end 48, an elongate body 44, and a universal quick-connect attachment tip 46 at a distal end 50. The universal attachment tip 46 is configured to quickly attach the stylus 40 to one or more instruments and return their position to the navigation system 10. For example, in TKA, the stylus 40 may be used to navigate itself, an attached plane checker 52, an attached posterior tibial wall hook 54, or any other suitable instruments. The tracking markers 18 on the array 42 of the stylus 40 are viewable by the navigation system 10 and return the location of the stylus tip 46 and any attached instruments.

The universal stylus 40 may be used alone or with attached instruments (e.g., posterior tibial wall hook 54 or plane checker 52). A mechanical connection of the universal stylus 40 to the instruments 52, 54 may allow for the functional length between the navigated tip 46 of the instrument (e.g., measurement surfaces of the hook 54 or plane checker 52) and pattern of the stylus reference array 42 to be controlled with a high level of repeatability. The universal tip 46 may act as a quick connect mechanism for fast attachment of the instrument by the user.

In one embodiment shown in FIG. 4B, a plane checker 52 is attached to the stylus 40. The universal attachment tip 46 may be inserted into and secured to the plane checker 52. The plane checker 52 may include a collar 56 and a foot 58. The collar 56 may include a longitudinal opening configured to receive the universal tip 46 of the stylus 40. The universal attachment tip 46 of the stylus 40 may be sized such that it forms a clearance fit with the opening in the collar 56. If desired, a spring preloaded mechanism may be positioned in the opening such that it preloads the connected parts to a reference surface. The plane checker 52 may be free to rotate relative to the stylus 40. Free rotation of the plane checker 52 around the longitudinal axis A of the stylus 40 may allow the user to quickly reorient the reference array 42, for example, to ensure line of sight to the camera 30. Although a clearance fit is described, any suitable connection between the tip 46 and plane checker 52 may be used to temporarily secure the components together. The foot 58 may include a U-shaped plate or other suitably shaped plate. The foot 58 may include a flat bottom surface or flat portion configured to contact a resection surface on the bone. When used during a TKA procedure, the plane checker 52 may be used to ensure that the angulation and/or location of the resection plans matches the plane.

In another embodiment shown in FIG. 4C, a posterior tibial wall hook 54 is attached to the stylus 40. The universal attachment tip 46 may be inserted into and coupled to the posterior tibial wall hook 54. The universal attachment tip 46 of the stylus 40 may be sized such that it forms a location fit with the opening in the collar 56. A static fit may allow for a fixed position and orientation of the posterior tibial wall hook 54 with respect to the stylus array 42. Although a static fit is described, any suitable connection between the tip 46 and wall hook 54 may be used to temporarily secure the components together. The wall hook 54 may include collar 56 with an enlarged tip or hook 60 at its distal-most end. When used during a TKA procedure, the posterior tibial wall hook 54 may be used to localize the tibial wall.

As shown in FIG. 1, the stylus 40 may be used alone. In this case, the dynamic reference bases 26 are tracking the patient anatomy of the femur 4 and tibia 6. The stylus 40 may be used for tasks such as landmark checks or characteristic bone surface acquisition including condyles or tibial plateau. In FIG. 5A, the tibial wall hook 54 has been attached to the distal end 50 of the stylus 40 via the attachment tip 46. When attached to the stylus 40, the hook 54 may be navigated via the stylus tracking array 42 and the user may perform acquisition of points to define the posterior tibial wall, for example. In FIG. 5B, the user may check the angulation and/or location of the resected planes using the attached plane checker 52. The plane checker 52 is attached to the universal tip 46 of the stylus 40, and the stylus 40 acts as a universal reference element for the plane checker 52. The resection planes determined by the plane checker 52 may be returned to the user via the navigation system 10.

Turning now to FIG. 6, a resected femur 4 and tibia 6 are shown for a registered patient during a TKA procedure. As shown in FIG. 1, the patient has dynamic reference bases 26 inserted into the tibia 6 and femur 4 and after registration is complete, the stylus 40 may be used to perform landmark checks and establish confidence in the navigational integrity. As can be seen in FIG. 6, however, landmark checks are significantly more challenging post resection as most of the unique bony anatomy has been resected. In robotic and navigated TKA, it is important for the surgeon to have confidence that the patient's anatomy has been accurately registered to the system 10 and that the accuracy is maintained throughout the course of the operation. Navigational integrity may be used to describe this confidence. Specifically, in TKA, navigational integrity may be challenging to maintain throughout the course of the procedure due to the primary anatomical landmarks that the surgeon may use as reference points being resected during the operation.

Accordingly, one or more embodiments described herein provide for the user to perform physical landmark checks even after bony resection removes natural landmarks. One or more embodiments described herein provide for surveillance of the dynamic reference base 26 to ensure that any relative motion to the dynamic reference base 26 is identified and/or recorded. These techniques serve to increase the user's ability to establish and maintain confidence in the system navigational integrity.

With emphasis on FIGS. 7A-7B, according to one embodiment, one or more surveillance markers 62 may be used to maintain navigational integrity throughout the procedure. For example, a patient registration may include the addition of a first surveillance markers 62 in the femur 4 and a second surveillance marker 62 in the tibia 6 in areas that will not be resected during the procedure. As shown in FIG. 7B, the surveillance marker 62 may include a body 64 including a fastener 66 terminating at a distal tip 68, a verification divot 70, and a tracking marker 18. The fastener 66 may include a bone pin, screw, or anchor, which is inserted into the patient's bony anatomy. The distal tip 68 may be pointed, sharp, or otherwise configured to engage bone. The verification divot 70 may be integrated into the body 64 of the surveillance marker 62. A single tracking marker 18 may be attached to the top of the marker 62, for example, near the verification divot 70.

Once inserted into the patient, the location of the surveillance marker 62 may be registered relative to the dynamic reference base 26. The registration stores the virtual distance between the surveillance marker 62 and the dynamic reference base 26. If the dynamic reference base 26 moves (for example, if it was bumped by the user), the system 10 measures the distance and alerts the user when a movement threshold, for example, 2 mm is exceeded. If the user would like to verify or re-establish the navigational integrity, an additional landmark check may be conducted using the verification divot 66 in the surveillance marker 62 as shown in FIG. 8. For example, the tip 46 of the stylus 40 may be inserted into the verification divot 70 of the surveillance marker 62, thereby confirming navigational integrity.

In an alternative embodiment shown in FIGS. 9A-9B, the surveillance marker(s) may be replaced with one or more virtual landmarks 72 in order to maintain navigational integrity throughout the procedure. For example, a first virtual landmark 72 may be positioned in the femur 4 and a second virtual landmark 72 may be positioned in the tibia 6 in areas that will not be resected. The virtual landmark 72 may include a fastener 74, such as a cortical bone screw, with a verification divot 76, for example, nested in the drive feature of the screw. The fastener 74 may include a threaded shaft 78 and an enlarged head 80. As shown in FIG. 9A, the virtual landmarks 72 may be inserted into the patient's bony anatomy at the start of the procedure and the location returned to the system 10 using the stylus 40. If the user would like to perform an intraoperative landmark check at any time (including after resection), the user simply inserts the distal tip 46 of the stylus 40 into the divot 76 of the virtual landmark 72.

In an alternative embodiment shown in FIG. 10, a surveillance marker 82 may be integrated into the dynamic reference base 26 in order to maintain navigational integrity throughout the procedure. The surveillance marker 82 may be affixed the dynamic reference base 26 with a bridge 84 and one or more arms 86. The surveillance marker 82 may be affixed to the bridge 84, for example. The distance between the reference element of the dynamic reference base 26 and the surveillance marker 82 is stored by the system 10. If the dynamic reference base 26 and/or surveillance marker 82 is bumped and/or rotated about the axis indicated, the change in distance and/or movement would be identified and recorded by the system 10 and the user immediately alerted to the disruption.

In an alternative embodiment shown in FIGS. 11A-11B, a plane checker instrument 90 may be used to maintain navigational integrity even if traditional anatomical landmarks are removed during the procedure. The plane checker 90 may include a body 92 with a reference element or array 94 including a plurality of tracking markers 18, a shaft 96 extending from the body 92, and a foot 98 at the distal end of the shaft 96. The array 94 is located in a known location relative to the foot 98. The foot 98 may include a U-shaped plate or other suitably shaped plate with a flat bottom surface 100. When used during a TKA procedure, the plane checker 90 may be used to ensure that the angulation and/or location of the resection plans matches the plane. As shown in FIG. 11A, after resection of the femur 4 and/or tibia 6, the foot 98 includes a flat surface 100 which can be placed on the resection planes, and returns to the system 10 an angulation and cut depth. Using this information, the user is able to localize their position and maintain navigation integrity even after the traditional anatomical landmarks have been resected.

Turning now to FIGS. 12A-12B, embodiments of stylus 40 is shown. In navigated and robotic TKA, the surgeon may need to capture anatomical landmarks or points in order to register the patient anatomy to the system 10, establish and maintain confidence in the system's navigational integrity, and/or localize trials and implants to compare planned to placed accuracy. FIG. 1 shows one setup for navigated and/or robotic TKA. Dynamic reference bases 26 are attached to the femur 4 and tibia 6, and after being registered, the system 10 is able to track the location of each bone in 3D space. The navigated stylus 40 may be used for landmark localization and/or point acquisition. In one workflow, the stylus tip 46 is located at the point of interest and a foot pedal on the robot 12 is pressed to capture the point on the system 10. In this embodiment, the point capture depends on the surgeon pressing the foot pedal that is linked to the system 10.

The foot pedal method of point capture may be problematic if the foot pedal location on the operating room (OR) floor is unknown. For example, the foot pedal may be unintentionally kicked or moved out of reach of the surgeon. If this happens, the surgeon may need to change their focus from the operative field to search for the foot pedal. In addition, cables linking the foot pedal may be problematic, for example, as a trip hazard or obstructing free passage of equipment in the OR. Also, software may need to handle disabling other functionality, such as robot control, that may also be linked to the foot pedal before enabling point capture functionality, which adds complexity to the software algorithms. Accordingly, it may be desirable to include additional embodiments that could be used in place of the traditional foot pedal.

FIG. 12A shows an alternative setup for navigated and/or robotic TKA. FIG. 12A shows a similar setup to FIG. 1 except in this setup, once the point of interest has been localized by the stylus tip 46, the surgeon may rotate the stylus 40 about its long vertical axis by a threshold rotation. By rotating the stylus 40, the markers 18 move from a first position (prior to rotation) to a second position (after rotation). The stylus 40 may rotate about its axis by a threshold rotation of, for example, about 30°, about 60°, about 180°, or any suitable degree to indicate rotation. This rotation is captured by the system 10, and the point of interest is returned, thereby capturing the landmark by the system 10 without depressing the foot pedal or other button. To ensure that the system 10 behaves as intended while the surgeon is identifying points versus moving the tool freely, the system 10 may use algorithmic rules to filter out false positives. For example, the system may check that the threshold rotation (e.g., at least 30° of rotation) occurs while the tip 46 moves less than a given amount (e.g., less than 0.5 mm). For example, if greater than 0.5 mm movement occurs at the tip 46 during the 30° rotation, then disregard the point capture. If less than 0.5 mm movement occurs at the tip 46 during 30° rotation, then capture the point/landmark.

FIG. 12B shows another embodiment for navigated and/or robotic TKA. FIG. 12B shows a similar setup to FIG. 12A except in this embodiment, one tracking marker 18 associated with the array 42 is physically movable once the stylus 40 is on the point of interest or landmark. For example, one tracking marker 18 may be moved from a first tracking marker position 18a to a second tracking marker position 18b. The surgeon may manually move the marker 18 by pressing it with their thumb or finger while holding the stylus tip 46 steady in place. The system 10 detects the movement of one array marker 18a, 18b relative to the others and captures the point of interest.

In yet further embodiments, the process may include point capture via a voice input from the user; point capture via blocking or revealing a tracking marker, or blocking then revealing one or more markers with a specific timing (e.g., equivalent of “double clicking”); point capture via gesture with the other hand, the face, or the elbow, captured and interpreted by visible light tracking; point capture by syncing stylus positioning with a metronome, such that at each beat, a new point is captured, which may be valuable if an articulation of a bone is being systematically digitized; or any other suitable point capture methods or techniques.

Turning now to FIG. 13, a tensor instrument or tensor 102 is shown with the femur 4 and tibia 6 in flexion. A goal of total knee arthroplasty (TKA) may be to obtain tensionally symmetric and balanced flexion and extension gaps. One method of achieving this is to use a gap balancing technique in which the femoral cuts (posterior femur 4 in flexion, distal femur 4 in extension) are performed parallel to the resected proximal tibia 6 with each collateral ligament equally tensioned to obtain rectangular flexion and extension gaps. The implants may follow this parallel placement, thereby maintaining tension once implantation is complete.

In robotic and/or navigated TKA, the patient's anatomy is registered to the computational system 10. After registration, the relative location of the patient's tibia 6 and femur 4 may be tracked allowing for real time updates on the computational system 10 of the patient's gap measurements. With the assistance of the tensor 102, the surgeon may view quantified ligament balancing on the navigation display 20. The tensor 102 may facilitate gap balancing by: (1) applying a distraction force between the tibia 6 and femur 4; and/or (2) applying the distraction force such that differing tension in the medial collateral ligament (MCL) and lateral collateral ligament (LCL) is transparent to the user.

As shown in FIG. 13, dynamic reference bases 26 are rigidly attached to the patient's tibia 6 and femur 4. During registration, the patient's anatomy is registered to the system 10 and tracked via the dynamic reference bases 26. Once the patient is registered, the surgeon may make a first resection. Post resection, the tensor 102 may be used to assess the gap balance. In the embodiment shown in FIG. 13, the proximal tibia 6 is resected and the tensor 102 is placed against the resection while the bones are held in flexion. In FIG. 15, the proximal tibia 6 is resected and the tensor 102 is placed against the resection while the bones are held in extension. It will be appreciated that the resections may be made following a femur first or tibia first approach.

With reference to FIG. 14, the tensor 102 may extend from a proximal end 104 to a distal end 106. The tensor 102 include a body 108 with a pair of independent superior distraction paddles 110 and an inferior distraction paddle 112 at the distal end 106, a central shaft 120 extending along the length of the body 108 configured to move the superior distraction paddles 110 relative to the inferior distraction paddle 112, a knob 116 at the proximal end 104 configured to move the superior distraction paddles 110, and a distraction balancing spring 118 positioned around the shaft 120 between the body 108 and the knob 104.

The tensor 102 is configured to provide a distraction force between the tibia 6 and femur 4. The tensor 102 may allow for any imbalance between MCL and LCL tensions to be displayed by a ligament balance indicator 114 positioned on the body 108 of the tensor 102. The first superior distraction paddle 110 may be connected to a first end of the ligament balance indicator 114 with a first rod 124, and the second superior distraction paddle 110 may be connected to the opposite end of the ligament balance indicator with a second rod 126. The indicator 114 may be pivotably connected to the body 108 with a pivot pin 128. The distraction force may be provided, for example, by rotation of the distraction knob 116. Rotation of the distraction knob 116 may translate the superior distraction paddles 110 outwardly and away from the inferior distraction paddle 112, thereby providing a gap 122 between the superior and inferior distraction paddles 110, 112. As the tensor 102 applies the distraction force, the bony anatomy will move. This movement may be registered by the navigation system 10 and may be displayed for interpretation by the surgeon. Specifically, the movement of the femur and tibia are continuously captured (e.g., as the tensor 102 is adjusted) by the camera 30 through the DRB 26 tracking markers on both tibia and femur bones and the gap information is automatically determined by the computer 16 based on the 3-dimensional positions of the tracking markers on the DRBs 26, rather than manually viewed on the tensor by the surgeon. The changing gap information may be continuously displayed/updated in the display 20 for interpretation by the surgeon and may also be used by the computer 16 to automatically determine whether the planned cuts of the tibia and/or femur need to be adjusted. In some cases, the computer 16 may modify the planned cuts based on the automatically determined gap information and display the modified cut planes on the display 20 (preferably in a 3-D graphical representation relative to the bones similar to FIG. 15, which the surgeon can then grab with, for example, fingers or mouse and rotate the displayed bones, their spacing and desired cut planes in different directions or angle using all 6 degrees of freedom or at least pitch, yaw and roll) for inspection, approval or modification by the surgeon. The gap data may include the angles and spatial separation between the femur and tibia. The angles and spatial separation data may be 3-dimensional data. Moreover, the graphical user interface of the computer 16 is configured to graphically display on the display 20 both the original cut planes and suggested modified cut planes, preferably in different colors such as red and blue, that are superimposed on top of each other for easy comparison by the surgeon.

With reference to FIG. 16, the distraction paddles 110, 112 of the tensor 102 endure forces when the tensor 102 is inserted and distracted between the femur 4 and tibia 6. For example, a distraction force FDISTRACTION presses against the inferior distraction paddle 112, a force FLCL is applied to the first superior distraction paddle 110, and a force FMCL is applied to the second superior distraction paddle 110. If the ligaments are in balance (FLCL=FMCL), as shown in FIG. 16, the ligament balance indicator 114 may indicate the balance. For example, the ligament balance indicator 114 may be shown generally horizontal. If the ligaments are not in balance (FLCL<FMCL, FLCL>FMCL), then the ligament balance indicator 114 may indicate the imbalance. For example, the ligament balance indicator 114 may be shown generally inclined. The lower side of the indicator 114 may indicate a greater amount of force on the respective superior distraction paddle 110. The indicator 114 may indicate the amount or degree of imbalance for each respective force.

According to one embodiment, a work flow for using the tensor 102 may include one or more of the following: (1) insert dynamic reference bases 26 in bone and register patient; (2) make a first resection (proximal tibia 6 or distal femur 4); (3) check ligament balance with tensor 102 in extension; (4) adjust implant plan accordingly; (5) make remaining resections; (6) check balance in flexion and extension; (7) adjust cuts if required; (8) insert femur trial and check balance in flexion and extension; (9) adjust tibia plan if required; and (10) complete procedure per standard practice. In this manner, the tensor 102 may facilitate gap balancing. By applying a distraction force between the tibia 6 and femur 4, the information may be displayed on the navigation screen 20 for interpretation by the user. In addition, the distraction force may be applied such that differing tension in the MCL and LCL is apparent to the user on the tensor 102.

Turning now to FIG. 17, an embodiment of a modular dynamic reference base 130 is described in further detail. In robotic and/or navigated TKA the patient's anatomy is registered to the system 10. The registration is facilitated by attaching one or more dynamic reference bases 130 to the bone. For example, a first dynamic reference base 130 may be rigidly attached to the femur 4 and a second dynamic reference base 130 may be rigidly attached to the tibia 6. Once registration is complete, the dynamic reference base(s) 130 enable tracking of the patient anatomy in real time.

Turning now to FIGS. 18A-18B, the dynamic reference base 130 may be modular, which may reduce the number of instruments used throughout the procedure. The modular dynamic reference base 130 may include a reference element or array 132 including a plurality of tracking markers 18, a bridge 134, and one or more fasteners or bone pins 136 for securing the dynamic reference base 130 to bone. The array 132 may include a rectangular frame with a cross brace. It will be appreciated, however, that the array 132 may include a suitable framework for supporting the tracking markers 18 in a desired configuration. In the embodiment shown, a tracking marker 18 is placed at each corner of the rectangular frame.

The tracking markers 18 may be protected from contamination via one or more physical barriers, protectors, or shields 138 configured to prevent loss of navigation intraoperatively. For example, each of the four tracking markers 18 may be positioned within a respective shield 138. The shields 138 may provide for protection for each of the individual tracking markers 18. The shield 138 may include a round shallow plate with a sloped side. It will be appreciated that the shield 138 may have any suitable configuration for protecting the tracking markers 18. In particular, the tracking markers 18 may be protected from contamination via the shields 138.

The dynamic reference base 130 may include an integrated bridge 134 and pin guide 140. The bridge 134 may include one or more through openings 142 and one or more pin guides 140 configured to receive bone pins 136. The pin guides 140 may include elongate channels configured to guide the bone pins 136 into bone. In the embodiment shown, the bridge 134 may include a first opening 142 aligned and in fluid communication with a first pin guide 140 and a second opening 142 aligned with and in fluid communication with a second pin guide 140. For example, the openings 142 and pin guides 140 may be generally aligned in parallel. It will be appreciated that any suitable number, location, and orientation of openings 142 and pin guides 140 may be selected to effectively attach the bridge 134 to bone. The dynamic reference base 130 may be attached to the patient via the bone pins 136. The bone pins 136 may include self-drilling bone pins. The bridge 134 may be locked to the pins 136 with a first locking screw 144. The integrated bridge 134 and pin guides 140 may reduce the number of instruments required and simplifying the workflow of the procedure.

The dynamic reference base 130 may be attached to the patient with the bone pins 136 and bridge 134. Subsequently, the array 132 may be attached to the bridge 134, for example, with one or more legs 143. The dynamic reference base 130 may include a plurality of legs 143 offered in different lengths for intra and extra incision, which may increase workflow flexibility by facilitating extra and intra incision placement of the construct. The leg 143 may be affixed to the frame of the array 132 and attached to a distal end of the bridge 134. For example, as shown in FIG. 20A, the leg 143 may be positioned through an opening 141 in the bridge 134. As best seen in FIG. 20B, the leg 143 and attached array 132 may be configured to rotate about one or more axes. For example, the leg 143 and attached array 132 may be able to rotate about a longitudinal axis A1 of the bridge 134 and/or an axis A2 perpendicular to the bridge 134. Thus, the bridge 134 may facilitate adjustment about two axes A1, A2. As shown in FIG. 20C, after adjustment along the one or more axes, the array 132 may be locked into position with one or more locking screws 146.

As shown in FIG. 21, an optional extension arm or extension 148 may be provided to increase positioning options for the reference element 132. For example, a first end of the extension 148 may connect to the leg 143 at an additional pivot point 150 and a second end of the extension 148 may connect to the bridge 134. The locking screw 146 may secure the extension 148 in position. The extension 148 may increase positioning options for the reference element 132, thereby increasing workflow flexibility.

In order to install the modular dynamic reference base 130, a handle 150 may be attached to the bridge 134. The handle 150 may temporarily connect, for example, to the proximal end of the bridge 134. The handle 150 may include a thumb lock 152, for example, to ensure rigid fixation between the handle 150 and the bridge 134 during use. After the bridge 134 and bone pins 136 are installed, the handle 150 may be removed from the assembly.

A work flow for installing the modular dynamic reference base 130 may include one or more of the following: (1) make skin incisions on patient; (2) attach the handle 150 to the bridge 134 (shown in FIG. 19A); (3) insert the bridge 134 until it contacts cortical bone; (4) drive the bone pins 136 through the bridge 134 (shown in FIG. 19B); (5) lock the bridge 134 to the pins 136 using the locking screw 144 (shown in FIG. 19C); (6) remove the handle 150; (7) attach the reference element 132 to the bridge 134 (shown in FIG. 20A); (8) adjust the orientation of the reference element 132 (shown in FIG. 20B); (9) lock the adjustment via the locking screw 146 (shown in FIG. 20C); and (10) optionally, attach the extension 148 between the reference element 132 and the bridge 134 to facilitate more positioning options for the reference element 132 (shown in FIG. 21).

Turning now to FIGS. 22A-22B, an embodiment of a bone pin 136 is shown. The bone pin 136 may be used to fixate the dynamic reference base 130 to bone. The bone pin 136 may include a self-drilling tip 154, chip extraction flutes 156, and bone threads 158. The bone threads 158 may extend along a portion of the pin 136 and may have any suitable attributes including handedness, thread angle, lead, pitch, etc. The pins 136 may include a pin driver interface 160. The pin driver interface 160 may include an engagement surface configured to interface with a driver instrument to thereby install the pin 136. For example, the driver interface 160 may be configured to transfer axial insertion force and torque to the pin 136 to facilitate the pin 136 being driven into the patient anatomy.

It will be further understood that various changes in the details, materials, and arrangements of the parts which have been described and illustrated in order to explain the nature of this invention may be made by those skilled in the art without departing from the scope of the invention as expressed in the claims. One skilled in the art will appreciate that the embodiments discussed above are non-limiting. It will also be appreciated that one or more features of one embodiment may be partially or fully incorporated into one or more other embodiments described herein.

Crawford, Neil R., Zappacosta, Jason, Chappuis, Olivier, Kostrzewski, Szymon, Cicchini, Stephen, Cameron, Hayden, Blackwell, Timothy, Eckert, Peter, Stumpo, David, Brot, Benoit, Mike, Drew

Patent Priority Assignee Title
Patent Priority Assignee Title
10034717, Mar 17 2014 Intuitive Surgical Operations, Inc. System and method for breakaway clutching in an articulated arm
3035685,
4150293, Apr 01 1976 Siemens Aktiengesellschaft Tomographic apparatus for producing transverse layer images
5246010, Dec 11 1990 Biotrine Corporation Method and apparatus for exhalation analysis
5354314, Dec 23 1988 MEDICAL INSTRUMENTATION AND DIAGNOSTICS CORPORATION MIDCO Three-dimensional beam localization apparatus and microscope for stereotactic diagnoses or surgery mounted on robotic type arm
5397323, Oct 30 1992 International Business Machines Corporation Remote center-of-motion robot for surgery
5598453, Aug 30 1994 Hitachi Medical Corporation Method for X-ray fluoroscopy or radiography, and X-ray apparatus
5772594, Oct 16 1996 SOFAMOR DANEK HOLDINGS, INC Fluoroscopic image guided orthopaedic surgery system with intraoperative registration
5791908, Mar 29 1995 Apparatus and method for telesurgery
5820559, Mar 20 1997 Computerized boundary estimation in medical images
5825982, Sep 15 1995 Intuitive Surgical, Inc Head cursor control interface for an automated endoscope system for optimal positioning
5887121, Apr 21 1995 International Business Machines Corporation Method of constrained Cartesian control of robotic mechanisms with active and passive joints
5911449, Apr 30 1997 Ethicon, Inc Semi-automated needle feed method and apparatus
5951475, Sep 25 1997 Integrated Surgical Systems Methods and apparatus for registering CT-scan data to multiple fluoroscopic images
5987960, Sep 26 1997 MAKO SURGICAL CORP Tool calibrator
6012216, Apr 30 1997 Ethicon, Inc Stand alone swage apparatus
6031888, Nov 26 1997 Picker International, Inc.; PICKER INTERNATIONAL, INC Fluoro-assist feature for a diagnostic imaging device
6033415, Sep 14 1998 THINK SURGICAL, INC System and method for performing image directed robotic orthopaedic procedures without a fiducial reference system
6080181, Jun 07 1995 SRI International System and method for releasably holding a surgical instrument
6106511, May 14 1993 SRI International Methods and devices for positioning a surgical instrument at a surgical site
6122541, May 04 1995 INTEGRA BURLINGTON MA, INC Head band for frameless stereotactic registration
6144875, Mar 16 1999 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Apparatus and method for compensating for respiratory and patient motion during treatment
6157853, Nov 12 1997 STEREOTAXIS, INC Method and apparatus using shaped field of repositionable magnet to guide implant
6167145, Mar 29 1996 SURGICAL NAVIGATION TECHNOLOGIEIS, INC Bone navigation system
6167292, Jun 09 1998 SCHARER MAYFIELD NEUROMATE Registering method and apparatus for robotic surgery, and a registering device constituting an application thereof
6201984, Jun 13 1991 International Business Machines Corporation System and method for augmentation of endoscopic surgery
6203196, Sep 01 1998 Siemens Healthcare GmbH X-ray diagnostic apparatus with a beam transmitter and beam receiver mounted opposite one another on a curved holder
6205411, Feb 21 1997 Carnegie Mellon University Computer-assisted surgery planner and intra-operative guidance system
6212419, Nov 12 1997 STEREOTAXIS, INC Method and apparatus using shaped field of repositionable magnet to guide implant
6231565, Jun 18 1997 Covidien LP Robotic arm DLUs for performing surgical tasks
6236875, Oct 07 1994 SURGICAL NAVIGATION TECHNOLOGIES, INC ; ST LOUIS UNIVERSITY Surgical navigation systems including reference and localization frames
6246900, May 04 1995 INTEGRA BURLINGTON MA, INC Head band for frameless stereotactic registration
6301495, Apr 27 1999 International Business Machines Corporation System and method for intra-operative, image-based, interactive verification of a pre-operative surgical plan
6306126, Sep 18 1998 STRYKER EUROPEAN HOLDINGS III, LLC Calibrating device
6312435, Oct 08 1999 Intuitive Surgical Operations, Inc Surgical instrument with extended reach for use in minimally invasive surgery
6314311, Jul 28 1999 PICKER INTERNATIONAL, INC Movable mirror laser registration system
6320929, Feb 12 1999 Siemens Healthcare GmbH Method for scanning an examination subject with a CT device
6322567, Feb 09 1999 THINK SURGICAL, INC Bone motion tracking system
6325808, Dec 08 1998 WEN, JOHN T Robotic system, docking station, and surgical tool for collaborative control in minimally invasive surgery
6340363, Oct 09 1998 Surgical Navigation Technologies, Inc. Image guided vertebral distractor and method for tracking the position of vertebrae
6377011, Jan 26 2000 Massachusetts Institute of Technology Force feedback user interface for minimally invasive surgical simulator and teleoperator and other similar apparatus
6379302, Oct 28 1999 Medtronic Navigation, Inc Navigation information overlay onto ultrasound imagery
6402762, Oct 28 1999 Surgical Navigation Technologies, Inc. System for translation of electromagnetic and optical localization systems
6424885, Apr 07 1999 Intuitive Surgical Operations, Inc Camera referenced control in a minimally invasive surgical apparatus
6447503, Jan 29 1998 International Business Machines Corporation Laser dermablator and dermablation
6451027, Dec 16 1998 Intuitive Surgical Operations, Inc Devices and methods for moving an image capture device in telesurgical systems
6477400, Aug 20 1998 SOFAMOR DANEK HOLDINGS, INC Fluoroscopic image guided orthopaedic surgery system with intraoperative registration
6484049, Apr 28 2000 STRYKER EUROPEAN HOLDINGS I, LLC Fluoroscopic tracking and visualization system
6487267, Jun 18 1999 Siemens Aktiengesellschaft X-ray diagnostic device for producing computed tomography and radioscopic exposures
6490467, Oct 19 1990 Surgical Navigation Technologies; ST LOUIS UNIVERSITY Surgical navigation systems including reference and localization frames
6490475, Apr 28 2000 STRYKER EUROPEAN HOLDINGS I, LLC Fluoroscopic tracking and visualization system
6499488, Oct 28 1999 SURGICAL NAVIGATION TECHNOLOGIES, INC Surgical sensor
6501981, Mar 16 1999 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Apparatus and method for compensating for respiratory and patient motions during treatment
6507751, Nov 12 1997 STEREOTAXIS, INC Method and apparatus using shaped field of repositionable magnet to guide implant
6535756, Apr 07 2000 Medtronic Navigation, Inc Trajectory storage apparatus and method for surgical navigation system
6560354, Feb 16 1999 University of Rochester Apparatus and method for registration of images to physical space using a weighted combination of points and surfaces
6565554, Apr 07 1999 Intuitive Surgical Operations, Inc Friction compensation in a minimally invasive surgical apparatus
6587750, Sep 25 2001 Intuitive Surgical Operations, Inc Removable infinite roll master grip handle and touch sensor for robotic surgery
6614453, May 05 2000 Koninklijke Philips Electronics, N.V. Method and apparatus for medical image display for surgical tool planning and navigation in clinical environments
6614871, Mar 26 1999 Hitachi Medical Corporation Medical X-ray apparatus
6619840, Oct 15 2001 Koninklijke Philips Electronics N.V. Interventional volume scanner
6636757, Jun 04 2001 Surgical Navigation Technologies, Inc. Method and apparatus for electromagnetic navigation of a surgical probe near a metal object
6645196, Jun 16 2000 Intuitive Surgical Operations, Inc Guided tool change
6666579, Dec 28 2000 GE Medical Systems Global Technology Company, LLC Method and apparatus for obtaining and displaying computed tomography images using a fluoroscopy imaging system
6669635, Oct 28 1999 Surgical Navigation Technologies, Inc. Navigation information overlay onto ultrasound imagery
6701173, Feb 27 1996 Kent Ridge Digital Labs Curved surgical instruments and method of mapping a curved path for stereotactic surgery
6757068, Jan 28 2000 THALES VISIONIX, INC Self-referenced tracking
6782287, Jun 27 2000 STRYKER EUROPEAN HOLDINGS III, LLC Method and apparatus for tracking a medical instrument based on image registration
6783524, Apr 19 2001 KRANOS IP II CORPORATION Robotic surgical tool with ultrasound cauterizing and cutting instrument
6786896, Sep 18 1998 Massachusetts Institute of Technology Robotic apparatus
6788018, Aug 03 1999 Intuitive Surgical Operations, Inc Ceiling and floor mounted surgical robot set-up arms
6804581, Aug 10 1992 Intuitive Surgical Operations, Inc Automated endoscope system for optimal positioning
6823207, Aug 26 2000 GE Medical Systems Global Technology Company, LLC Integrated fluoroscopic surgical navigation and imaging workstation with command protocol
6827351, Aug 09 2001 NUOVO PIGNONE TECNOLOGIE S R L Link mechanism of surgical robot
6837892, Jul 24 2000 MAZOR ROBOTICS LTD Miniature bone-mounted surgical robot
6839612, Dec 07 2001 Intuitive Surgical Operations, Inc Microwrist system for surgical procedures
6856826, Apr 28 2000 STRYKER EUROPEAN HOLDINGS I, LLC Fluoroscopic tracking and visualization system
6856827, Apr 28 2000 STRYKER EUROPEAN HOLDINGS I, LLC Fluoroscopic tracking and visualization system
6879880, Apr 07 1999 Intuitive Surgical Operations, Inc Grip strength with tactile feedback for robotic surgery
6892090, Aug 19 2002 Surgical Navigation Technologies, Inc. Method and apparatus for virtual endoscopy
6920347, Apr 07 2000 Medtronic Navigation, Inc Trajectory storage apparatus and method for surgical navigation systems
6922632, Aug 09 2002 THALES VISIONIX, INC Tracking, auto-calibration, and map-building system
6968224, Oct 28 1999 Surgical Navigation Technologies, Inc. Method of detecting organ matter shift in a patient
6978166, Oct 07 1994 SURGICAL NAVIGATION TECHNOLOGIES, INC System for use in displaying images of a body part
6988009, Feb 04 2003 Zimmer Technology, Inc. Implant registration device for surgical navigation system
6991627, May 20 1996 Intuitive Surgical Operations, Inc Articulated surgical instrument for performing minimally invasive surgery with enhanced dexterity and sensitivity
6996487, Mar 15 2001 ORTHOSOFT HOLDINGS INC Automatic calibration system for computer-aided surgical instruments
6999852, Jan 21 1992 SRI International Flexible robotic surgery system and method
7007699, Oct 28 1999 SURGICAL NAVIGATION TECHNOLOGIES, INC Surgical sensor
7016457, Dec 31 1998 General Electric Company Multimode imaging system for generating high quality images
7043961, Jan 30 2001 MAKO SURGICAL CORP Tool calibrator and tracker system
7062006, Jan 19 2005 AIRDRIE PARTNERS I, LP Computed tomography with increased field of view
7063705, Jun 29 2001 Warsaw Orthopedic, Inc Fluoroscopic locator and registration device
7072707, Jun 27 2001 Vanderbilt University Method and apparatus for collecting and processing physical space data for use while performing image-guided surgery
7083615, Feb 24 2003 Intuitive Surgical Operations, Inc Surgical tool having electrocautery energy supply conductor with inhibited current leakage
7097640, Jun 24 1996 Intuitive Surgical Operations, Inc Multi-functional surgical control system and switching interface
7099428, Jun 25 2002 REGENTS OF THE UNIVERSITY OF MICHIGAN, THE High spatial resolution X-ray computed tomography (CT) system
7108421, Mar 19 2002 Medtronic Navigation, Inc Systems and methods for imaging large field-of-view objects
7130676, Aug 20 1998 Sofamor Danek Holdings, Inc. Fluoroscopic image guided orthopaedic surgery system with intraoperative registration
7139418, Sep 25 2001 MAKO SURGICAL CORP Fluoroscopic registration artifact with optical and/or magnetic markers
7139601, Apr 26 1993 Surgical Navigation Technologies, Inc.; St. Louis University Surgical navigation systems including reference and localization frames
7155316, Aug 13 2002 DEERFIELD IMAGING, INC Microsurgical robot system
7164968, Apr 05 2002 The Trustees of Columbia University in the City of New York Robotic scrub nurse
7167738, Aug 01 2000 STRYKER EUROPEAN HOLDINGS III, LLC Method for navigating in the interior of the body using three-dimensionally visualized structures
7169141, Feb 24 1998 AURIS HEALTH, INC Surgical instrument
7172627, Apr 03 2001 SCIENT X Stabilized interbody fusion system for vertebrae
7194120, May 29 2003 Board of Regents The University of Texas System Methods and systems for image-guided placement of implants
7197107, Apr 30 2003 Nihon University X-ray CT apparatus and X-ray CT method
7231014, Feb 14 2005 VAREX IMAGING CORPORATION Multiple mode flat panel X-ray imaging system
7231063, Aug 09 2002 THALES VISIONIX, INC Fiducial detection system
7239940, Sep 07 2001 Intuitive Surgical Operations, Inc Modularity system for computer assisted surgery
7248914, Jun 28 2002 STEREOTAXIS, INC Method of navigating medical devices in the presence of radiopaque material
7301648, Jan 28 2000 THALES VISIONIX, INC Self-referenced tracking
7302288, Nov 25 1996 MAKO SURGICAL CORP Tool position indicator
7313430, Aug 28 2003 Medtronic Navigation, Inc. Method and apparatus for performing stereotactic surgery
7318805, Mar 16 1999 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Apparatus and method for compensating for respiratory and patient motion during treatment
7318827, Dec 02 2002 Aesculap AG Osteotomy procedure
7319897, Dec 02 2002 Aesculap AG Localization device display method and apparatus
7324623, Jul 15 2003 Koninklijke Philips Electronics N. V. Computed tomography scanner with large gantry bore
7327865, Jun 30 2004 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Fiducial-less tracking with non-rigid image registration
7331967, Sep 09 2002 AURIS HEALTH, INC Surgical instrument coupling mechanism
7333642, Jan 21 1992 SRI International, Inc. Method and apparatus for transforming coordinate systems in a telemanipulation system
7339341, Jul 08 2003 Virtual Incision Corporation Surgical camera robot
7366562, Oct 17 2003 SURGICAL NAVIGATION TECHNOLOGIES, INC Method and apparatus for surgical navigation
7379790, May 04 2004 Intuitive Surgical Operations, Inc Tool memory-based software upgrades for robotic surgery
7386365, May 04 2004 Intuitive Surgical Operations, Inc Tool grip calibration for robotic surgery
7422592, Dec 29 2000 Intuitive Surgical Operations, Inc Bipolar cauterizing instrument
7435216, Apr 22 2004 Korea Advanced Institute of Science and Technology Robotized laparoscopic system
7440793, Jul 22 2004 Apparatus and method for removing abnormal tissue
7460637, Jun 25 2002 The Regents of the University of Michigan High spatial resolution X-ray computed tomography (CT) method and system
7466303, Feb 10 2004 SUNNYBROOK HEALTH SCIENCES CENTRE Device and process for manipulating real and virtual objects in three-dimensional space
7493153, Jun 13 2001 VOLUME INTERACTIONS PTE LTD Augmented reality system controlled by probe position
7505617, Jun 30 2004 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Fiducial-less tracking with non-rigid image registration
7533892, Jan 05 2006 Intuitive Surgical Operations, Inc Steering system for heavy mobile medical equipment
7542791, Jan 30 2003 Medtronic Navigation, Inc. Method and apparatus for preplanning a surgical procedure
7555331, Aug 26 2004 STEREOTAXIS, INC Method for surgical navigation utilizing scale-invariant registration between a navigation system and a localization system
7567834, May 03 2004 Medtronic Navigation, Inc Method and apparatus for implantation between two vertebral bodies
7594912, Sep 30 2004 Intuitive Surgical Operations, Inc Offset remote center manipulator for robotic surgery
7606613, Mar 23 1999 Medtronic Navigation, Inc Navigational guidance via computer-assisted fluoroscopic imaging
7607440, Jun 07 2001 Intuitive Surgical Operations, Inc Methods and apparatus for surgical planning
7623902, Mar 07 2005 LEUCADIA 6, LLC System and methods for improved access to vertebral bodies for kyphoplasty, vertebroplasty, vertebral body biopsy or screw placement
7630752, Aug 06 2002 STEREOTAXIS, INC Remote control of medical devices using a virtual device interface
7630753, Feb 28 2002 Medtronic Navigation, Inc. Method and apparatus for perspective inversion
7643862, Sep 15 2005 Biomet Manufacturing, LLC Virtual mouse for use in surgical navigation
7660623, Jan 30 2003 Medtronic Navigation, Inc. Six degree of freedom alignment display for medical procedures
7661881, Mar 19 2002 Medtronic Navigation, Inc Systems and methods for imaging large field-of-view objects
7683331, Dec 08 2006 Rush University Medical Center Single photon emission computed tomography (SPECT) system for cardiac imaging
7683332, Dec 08 2006 Rush University Medical Center Integrated single photon emission computed tomography (SPECT)/transmission computed tomography (TCT) system for cardiac imaging
7689320, Dec 20 2005 Intuitive Surgical Operations, Inc Robotic surgical system with joint motion controller adapted to reduce instrument tip vibrations
7691098, Jun 29 2001 Intuitive Surgical Operations, Inc Platform link wrist mechanism
7702379, Aug 25 2004 General Electric Company System and method for hybrid tracking in surgical navigation
7702477, Jul 05 2006 Aesculap AG Calibration method and calibration device for a surgical referencing unit
7711083, Sep 01 2006 Siemens Healthcare GmbH Method for reconstructing a three-dimensional image volume and x-ray devices
7711406, Nov 23 2005 General Electric Company; GENERAL ELECTRC COMPANY System and method for detection of electromagnetic radiation by amorphous silicon x-ray detector for metal detection in x-ray imaging
7720523, Apr 20 2005 General Electric Company System and method for managing power deactivation within a medical imaging system
7725253, Aug 09 2002 THALES VISIONIX, INC Tracking, auto-calibration, and map-building system
7726171, Sep 15 2004 AO Technology AG Device and process for calibrating geometrical measurements of surgical tools and orienting the same in space
7742801, Aug 08 2006 Smith & Nephew, Inc; SMITH & NEPHEW ORTHOPAEDICS AG; SMITH & NEPHEW PTE LIMITED Planning method and system for free-form implant modification
7751865, Oct 17 2003 Medtronic Navigation, Inc. Method and apparatus for surgical navigation
7760849, Apr 14 2006 WILLIAM BEAUMONT HOSPITAL Tetrahedron beam computed tomography
7762825, Dec 20 2005 Intuitive Surgical Operations, Inc Electro-mechanical interfaces to mount robotic surgical arms
7763015, Jan 24 2005 Intuitive Surgical Operations, Inc Modular manipulator support for robotic surgery
7787699, Aug 17 2005 General Electric Company Real-time integration and recording of surgical image data
7796728, Aug 05 2004 ELEKTA AB PUBL X-ray apparatus
7813838, Aug 31 2004 SIEMENS HEALTHINEERS AG Medical examination and treatment apparatus
7818044, Oct 17 2003 Medtronic Navigation, Inc. Method and apparatus for surgical navigation
7819859, Dec 20 2005 Intuitive Surgical Operations, Inc Control system for reducing internally generated frictional and inertial resistance to manual positioning of a surgical manipulator
7824401, Oct 08 2004 Intuitive Surgical Operations, Inc Robotic tool with wristed monopolar electrosurgical end effectors
7831294, Oct 07 2004 STEREOTAXIS, INC System and method of surgical imagining with anatomical overlay for navigation of surgical devices
7834484, Jul 16 2007 Covidien LP Connection cable and method for activating a voltage-controlled generator
7835557, Nov 28 2006 Medtronic Navigation, Inc. System and method for detecting status of imaging device
7835778, Oct 16 2003 Medtronic Navigation, Inc Method and apparatus for surgical navigation of a multiple piece construct for implantation
7835784, Sep 21 2005 Medtronic Navigation, Inc Method and apparatus for positioning a reference frame
7840253, Oct 17 2003 Medtronic Navigation, Inc Method and apparatus for surgical navigation
7840256, Jun 27 2005 Biomet Manufacturing, LLC Image guided tracking array and method
7843158, Mar 31 2008 Intuitive Surgical Operations, Inc Medical robotic system adapted to inhibit motions resulting in excessive end effector forces
7844320, Jun 28 1996 CICAS IP LLC Method and apparatus for volumetric image navigation
7853305, Apr 07 2000 Medtronic Navigation, Inc. Trajectory storage apparatus and method for surgical navigation systems
7853313, Jun 11 2003 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Apparatus and method for radiosurgery
7865269, Dec 20 2005 Intuitive Surgical Operations, Inc. Robotic surgical system with joint motion controller adapted to reduce instrument tip vibrations
7879045, Apr 10 2007 Medtronic, Inc. System for guiding instruments having different sizes
7881767, Jan 13 2003 ST JUDE MEDICAL INTERNATIONAL HOLDING S À R L Method and system for registering a medical situation associated with a first coordinate system, in a second coordinate system using an MPS system
7881770, Mar 01 2000 Medtronic Navigation, Inc. Multiple cannula image guided tool for image guided procedures
7886743, Mar 31 2008 Intuitive Surgical Operations, Inc Sterile drape interface for robotic surgical instrument
7900524, Sep 09 2008 THALES VISIONIX, INC Monitoring tools
7907166, Dec 30 2005 Intuitive Surgical Operations, Inc Stereo telestration for robotic surgery
7909122, Jan 05 2006 Intuitive Surgical Operations, Inc Methods of steering heavy mobile medical equipment
7925653, Feb 27 2008 General Electric Company Method and system for accessing a group of objects in an electronic document
7930065, Dec 30 2005 Intuitive Surgical Operations, Inc Robotic surgery system including position sensors using fiber bragg gratings
7935130, Nov 16 2006 Intuitive Surgical Operations, Inc Two-piece end-effectors for robotic surgical tools
7940999, Apr 24 2006 Siemens Healthcare GmbH System and method for learning-based 2D/3D rigid registration for image-guided surgery using Jensen-Shannon divergence
7945012, Aug 17 2006 Koninklijke Philips Electronics N.V. Computed tomography image acquisition
7945021, Dec 18 2002 Varian Medical Systems, Inc Multi-mode cone beam CT radiotherapy simulator and treatment machine with a flat panel imager
7953470, Oct 23 2000 Deutsches Krebsforschungszentrum Stiftung Des Offentlichen Rechts Method, device and navigation aid for navigation during medical interventions
7954397, Oct 13 2008 meerecompany Surgical slave robot
7971341, Oct 17 2003 Medtronic Navigation, Inc. Method of forming an electromagnetic sensing coil in a medical instrument for a surgical navigation system
7974674, May 28 2004 ST JUDE MEDICAL, ATRIAL FIBRILLATION DIVISION, INC Robotic surgical system and method for surface modeling
7974677, Jan 30 2003 Medtronic Navigation, Inc. Method and apparatus for preplanning a surgical procedure
7974681, Aug 12 2004 AURIS HEALTH, INC Robotic catheter system
7979157, Jul 23 2004 CENTRE FOR SURGICAL INVENTION AND INNOVATION; CENTRE FOR SURGICAL INVENTION & INNOVATION Multi-purpose robotic operating system and method
7983733, Oct 26 2004 STEREOTAXIS, INC Surgical navigation using a three-dimensional user interface
7988215, May 11 2007 Deutsches Zentrum fuer Luft-und Raumfahrt e.V. Surgical robotic system
7996110, Jul 03 2001 MACDONALD, DETTWILER AND ASSOCIATES INC Surgical robot and robotic controller
8004121, Jul 16 2007 Covidien LP Connection cable and method for activating a voltage-controlled generator
8004229, May 19 2005 Intuitive Surgical Operations, Inc Software center and highly configurable robotic systems for surgery and other uses
8010177, Apr 24 2007 Medtronic, Inc Intraoperative image registration
8019045, Aug 08 2008 Canon Kabushiki Kaisha X-ray imaging apparatus
8021310, Apr 21 2006 Covidien LP Work of breathing display for a ventilation system
8046054, Jan 23 2006 Industry-University Cooperation Foundation, HANYANG UNIVERSITY, a university foundation of Seoul Bi-planar fluoroscopy guided robot system for minimally invasive surgery and the control method thereof
8046057, Apr 11 2001 Tissue structure identification in advance of instrument
8052688, Oct 06 2006 Electromagnetic apparatus and method for nerve localization during spinal surgery
8054184, Jul 31 2008 Intuitive Surgical Operations, Inc Identification of surgical instrument attached to surgical robot
8054752, Dec 22 2005 Intuitive Surgical Operations, Inc Synchronous data communication
8057397, May 16 2007 General Electric Company Navigation and imaging system sychronized with respiratory and/or cardiac activity
8057407, Oct 28 1999 Medtronic Navigation, Inc. Surgical sensor
8062288, Sep 30 2004 Intuitive Surgical Operations, Inc Offset remote center manipulator for robotic surgery
8062375, Oct 15 2009 Globus Medical, Inc. Expandable fusion device and method of installation thereof
8066524, Dec 20 2005 Intuitive Surgical Operations, Inc. Surgical system with electro-mechanical interfaces to mount robotic surgical arms
8073335, Sep 30 2008 Intuitive Surgical Operations, Inc Operator input device for a robotic surgical system
8079950, Sep 29 2005 Intuitive Surgical Operations, Inc Autofocus and/or autoscaling in telesurgery
8086299, Mar 16 1999 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Frameless radiosurgery treatment system and method
8092370, Sep 19 2007 Sriort, LLC Direct visualization robotic intra-operative radiation therapy applicator device
8098914, Mar 05 2007 Siemens Aktiengesellschaft Registration of CT volumes with fluoroscopic images
8100950, Jul 27 2007 The Cleveland Clinic Foundation Oblique lumbar interbody fusion
8105320, Apr 18 2002 Intuitive Surgical Operations Inc. Methods for replaceable end-effector cartridges
8108025, Apr 24 2007 Medtronic, Inc Flexible array for use in navigated surgery
8109877, Mar 11 2004 STRYKER EUROPEAN HOLDINGS III, LLC Method for determining a position of an object utilizing and ultrasonic imaging device
8112292, Apr 21 2006 Medtronic Navigation, Inc Method and apparatus for optimizing a therapy
8116430, Dec 18 2002 Varian Medical Systems, Inc Multi-mode cone beam CT radiotherapy simulator and treatment machine with a flat panel imager
8120301, Mar 09 2009 Intuitive Surgical Operations, Inc Ergonomic surgeon control console in robotic surgical systems
8121249, Jun 04 2009 Virginia Tech Intellectual Properties, Inc Multi-parameter X-ray computed tomography
8123675, May 27 1992 International Business Machines Corporation System and method for augmentation of endoscopic surgery
8133229, Jan 14 2000 Bonutti Skeletal Innovations LLC Knee arthroplasty method
8142420, Jan 25 2006 Intuitive Surgical Operations, Inc Robotic arm with five-bar spherical linkage
8147494, Dec 02 2002 Aesculap AG Osteotomy procedure
8150494, Mar 29 2007 Medtronic Navigation, Inc Apparatus for registering a physical space to image space
8150497, Sep 08 2006 Medtronic, Inc System for navigating a planned procedure within a body
8150498, Sep 08 2006 Medtronic, Inc System for identification of anatomical landmarks
8165658, Sep 26 2008 Medtronic, Inc Method and apparatus for positioning a guide relative to a base
8170313, Nov 28 2006 Medtronic Navigation, Inc. System and method for detecting status of imaging device
8179073, Jul 08 2003 The Board of Regents of the University of Nebraska Robotic devices with agent delivery components and related methods
8182476, Dec 08 1998 Intuitive Surgical Operations, Inc. In vivo accessories for minimally invasive robotic surgery
8184880, Dec 31 2008 Intuitive Surgical Operations, Inc Robust sparse image matching for robotic surgery
8202278, Nov 21 1997 Intuitive Surgical Operations, Inc. Sterile surgical drape
8208708, Mar 30 2006 Koninklijke Philips Electronics N V Targeting method, targeting device, computer readable medium and program element
8208988, May 13 2005 General Electric Company System and method for controlling a medical imaging device
8219177, Feb 16 2006 Globus Medical, Inc Method and system for performing invasive medical procedures using a surgical robot
8219178, Feb 16 2007 Globus Medical, Inc Method and system for performing invasive medical procedures using a surgical robot
8220468, Mar 31 2008 Intuitive Surgical Operations, Inc. Sterile drape interface for robotic surgical instrument
8224024, Oct 04 2005 THALES VISIONIX, INC Tracking objects with markers
8224484, Sep 30 2007 Intuitive Surgical Operations, Inc Methods of user interface with alternate tool mode for robotic surgical tools
8225798, May 18 2009 TELEFLEX MEDICAL INCORPORATED Method and devices for performing minimally invasive surgery
8228368, Apr 26 2008 Intuitive Surgical Operations, Inc Augmented stereoscopic visualization for a surgical robot using a captured fluorescence image and captured stereoscopic visible images
8231610, Sep 06 2006 NATIONAL CANCER CENTER Robotic surgical system for laparoscopic surgery
8239001, Oct 17 2003 Medtronic Navigation, Inc Method and apparatus for surgical navigation
8241271, Jun 30 2005 Intuitive Surgical Operations, Inc Robotic surgical instruments with a fluid flow control system for irrigation, aspiration, and blowing
8248413, Sep 18 2006 Stryker Corporation Visual navigation system for endoscopic surgery
8256319, Sep 30 2004 Intuitive Surgical Operations, Inc. Offset remote center manipulator for robotic surgery
8263933, Sep 04 2008 Carl Zeiss NTS GmbH Device and method for analyzing an organic sample
8271069, Oct 17 2003 Medtronic Navigation, Inc. Method and apparatus for surgical navigation
8271130, Mar 09 2009 Intuitive Surgical Operations, Inc Master controller having redundant degrees of freedom and added forces to create internal motion
8281670, Dec 30 2005 Intuitive Surgical Operations, Inc. Modular force sensor
8282653, Mar 24 2008 Board of Regents of the University of Nebraska System and methods for controlling surgical tool elements
8301226, Apr 24 2007 Medtronic, Inc Method and apparatus for performing a navigated procedure
8311611, Apr 24 2007 Medtronic, Inc Method for performing multiple registrations in a navigated procedure
8320991, Dec 01 2006 Medtronic Navigation Inc. Portable electromagnetic navigation system
8332012, Nov 19 2001 STRYKER EUROPEAN HOLDINGS III, LLC Apparatus and method for improving the accuracy of navigated surgical instrument
8333755, Mar 31 2008 Intuitive Surgical Operations, Inc Coupler to transfer controller motion from a robotic manipulator to an attached instrument
8335552, Mar 20 2009 Medtronic, Inc.; Medtronic, Inc Method and apparatus for instrument placement
8335557, Dec 22 2006 Siemens Healthcare GmbH System for carrying out and monitoring minimally-invasive interventions
8348931, Jan 24 2005 Intuitive Surgical Operations, Inc Modular mainpulator support for robotic surgery
8353963, Jan 12 2010 Globus Medical Expandable spacer and method for use thereof
8358818, Nov 16 2006 Vanderbilt University Apparatus and methods of compensating for organ deformation, registration of internal structures to images, and applications of same
8359730, Oct 17 2003 Medtronic Navigation, Inc. Method of forming an electromagnetic sensing coil in a medical instrument
8374673, Jan 25 2007 Warsaw Orthopedic, Inc. Integrated surgical navigational and neuromonitoring system having automated surgical assistance and control
8374723, Dec 31 2008 Intuitive Surgical Operations, Inc Obtaining force information in a minimally invasive surgical procedure
8379791, Oct 10 2008 Koninklijke Philips Electronics N.V. Method and apparatus to improve CT image acquisition using a displaced geometry
8386019, Feb 23 2007 SIEMENS HEALTHINEERS AG Arrangement for supporting a percutaneous intervention
8392022, Nov 19 2007 KUKA Laboratories GmbH Device comprising a robot, medical work station, and method for registering an object
8394099, Feb 01 2007 Interactive Neuroscience Center, LLC Surgical navigation
8395342, Mar 31 2008 Intuitive Surgical Operations, Inc. Medical robotic system adapted to inhibit motions resulting in excessive end effector forces
8398634, Apr 18 2002 Intuitive Surgical Operations, Inc Wristed robotic surgical tool for pluggable end-effectors
8400094, Dec 21 2007 Intuitive Surgical Operations, Inc Robotic surgical system with patient support
8414957, Apr 30 2008 Nanosys, Inc. Non-fouling surfaces for reflective spheres
8418073, Mar 09 2009 Intuitive Surgical Operations, Inc User interfaces for electrosurgical tools in robotic surgical systems
8450694, Dec 26 2005 GENERAL EQUIPMENT FOR MEDICAL IMAGING, SL; Consejo Superior de Investigaciones Cientificas; Universidad de Valencia Stand-alone mini gamma camera including a localization system for intrasurgical use
8452447, May 04 2004 Intuitive Surgical Operations, Inc. Tool grip calibration for robotic surgery
8462911, Nov 06 2007 Koninklijke Philips Electronics N V Nuclear medicine SPECT-CT machine with integrated asymmetric flat panel cone-beam CT and SPECT system
8465476, Sep 23 2009 Intuitive Surgical Operations, Inc Cannula mounting fixture
8465771, Mar 30 2005 The University of Western Ontario Anisotropic hydrogels
8467851, Sep 21 2005 Medtronic Navigation, Inc. Method and apparatus for positioning a reference frame
8467852, Apr 24 2007 Medtronic, Inc. Method and apparatus for performing a navigated procedure
8469947, Dec 20 2005 Intuitive Surgical Operations, Inc. Wireless communication in a robotic surgical system
8483434, Sep 21 2009 STRYKER EUROPEAN HOLDINGS III, LLC Technique for registering image data of an object
8483800, Nov 29 2008 STRYKER EUROPEAN HOLDINGS III, LLC Surgical navigation enabled imaging table environment
8486532, Apr 30 2008 Nanosys, Inc. Non-fouling surfaces for reflective spheres
8489235, Nov 20 1998 Intuitive Surgical Operations, Inc. Cooperative minimally invasive telesurgical system
8500722, Jan 24 2005 Intuitive Surgical Operations, Inc. Methods for compact counter balance arms
8500728, Aug 18 2008 ENCISION, INC Enhanced control systems including flexible shielding and support systems for electrosurgical applications
8504201, Nov 20 1998 Intuitive Sugrical Operations, Inc. Cooperative minimally invasive telesurgical system
8506555, Feb 03 2006 THE EUROPEAN ATOMIC ENERGY COMMUNITY EURATOM Robotic surgical system for performing minimally invasive medical procedures
8506556, Jan 25 2006 Intuitive Surgical Operations, Inc. Robotic arm with five-bar spherical linkage
8508173, Mar 09 2009 Intuitive Surgical Operations, Inc Adjustable ergonomic control console with user login
8512318, Jun 18 1997 Covidien LP Robotic arms DLUs for performing surgical tasks
8515576, Jul 03 2001 MACDONALD, DETTWILER AND ASSOCIATES INC Surgical robot and robotic controller
8518120, Oct 15 2009 Globus Medical, Inc.; Globus Medical, Inc Expandable fusion device and method of installation thereof
8521331, Nov 13 2009 Intuitive Surgical Operations, Inc Patient-side surgeon interface for a minimally invasive, teleoperated surgical instrument
8526688, Mar 09 2006 STRYKER EUROPEAN HOLDINGS III, LLC Methods and systems for registration of surgical navigation data and image data
8526700, Oct 06 2010 NuVasive, Inc Imaging system and method for surgical and interventional medical procedures
8527094, Nov 20 1998 Intuitive Surgical Operations, Inc Multi-user medical robotic system for collaboration or training in minimally invasive surgical procedures
8528440, Jul 27 2000 Intuitive Surgical Operations, Inc. Method for minimally invasive surgery
8532741, Sep 08 2006 Medtronic, Inc Method and apparatus to optimize electrode placement for neurological stimulation
8541970, May 19 2005 Intuitive Surgical Operations, Inc. Software center and highly configurable robotic systems for surgery and other uses
8548563, Mar 29 2007 Medtronic Navigation, Inc. Method for registering a physical space to image space
8549732, Oct 17 2003 Medtronic Navigation, Inc. Method of forming an electromagnetic sensing coil in a medical instrument
8551114, Nov 06 2006 Human Robotics S.A. de C.V. Robotic surgical device
8551116, Dec 08 1998 Intuitive Surgical Operations, Inc In vivo accessories for minimally invasive robotic surgery
8556807, Dec 21 2006 Intuitive Surgical Operations, Inc Hermetically sealed distal sensor endoscope
8556979, Oct 15 2009 Globus Medical, Inc.; Globus Medical, Inc Expandable fusion device and method of installation thereof
8560118, Apr 16 2007 DEERFIELD IMAGING, INC Methods, devices, and systems for non-mechanically restricting and/or programming movement of a tool of a manipulator along a single axis
8561473, Dec 18 2007 Intuitive Surgical Operations, Inc Force sensor temperature compensation
8562594, Sep 30 2004 Intuitive Surgical Operations, Inc. Offset remote center manipulator for robotic surgery
8571638, Jul 24 2000 MAZOR ROBOTICS LTD Miniature bone-attached surgical robot and method of use thereof
8571710, Jun 07 2001 Intuitive Surgical Operations, Inc. Methods and apparatus for surgical planning
8573465, Feb 14 2008 Cilag GmbH International Robotically-controlled surgical end effector system with rotary actuated closure systems
8574303, Apr 27 2007 ZIMMER KNEE CREATIONS, INC Osteoarthritis treatment and device
8585420, Dec 20 2005 Intuitive Surgical Operations, Inc Apparatus for surgical systems with electro-mechanical interfaces to mount robotic surgical arms
8594841, Dec 31 2008 Intuitive Surgical Operations, Inc Visual force feedback in a minimally invasive surgical procedure
8597198, Apr 21 2006 Covidien LP Work of breathing display for a ventilation system
8600478, Feb 19 2007 Medtronic Navigation, Inc. Automatic identification of instruments used with a surgical navigation system
8603077, May 14 2010 Intuitive Surgical Operations, Inc Force transmission for robotic surgical instrument
8611985, Jan 29 2009 IMACTIS Method and device for navigation of a surgical tool
8613230, Dec 30 2005 Intuitive Surgical Operations, Inc. Force sensing for surgical instruments
8621939, Dec 18 2007 Intuitive Surgical Operations, Inc. Ribbed force sensor
8624537, May 19 2005 Intuitive Surgical Operations, Inc. Software center and highly configurable robotic systems for surgery and other uses
8630389, Aug 08 2008 Canon Kabushiki Kaisha X-ray imaging apparatus
8634897, Apr 07 2000 Medtronic Navigation, Inc. Trajectory storage apparatus and method for surgical navigation systems
8634957, May 04 2004 Intuitive Surgical Operations, Inc. Tool memory-based software upgrades for robotic surgery
8638056, Mar 09 2009 Intuitive Surgical Operations, Inc Control panel for an adjustable ergonomic control console
8638057, Mar 09 2009 Intuitive Surgical Operations, Inc Selective additional control in a control console for surgical instruments
8639000, Dec 31 2008 Intuitive Surgical Operations, Inc. Robust sparse image matching for robotic surgery
8641726, Aug 28 2001 Bonutti Skeletal Innovations LLC Method for robotic arthroplasty using navigation
8644907, Oct 28 1999 Medtronic Navigaton, Inc. Method and apparatus for surgical navigation
8657809, Sep 29 2010 STRYKER EUROPEAN HOLDINGS III, LLC Surgical navigation system
8660635, Sep 29 2006 Medtronic, Inc Method and apparatus for optimizing a computer assisted surgical procedure
8666544, Aug 16 1999 Intuitive Surgical Operations, Inc. Cooperative minimally invasive telesurgical system
8675939, Jul 13 2010 STRYKER EUROPEAN HOLDINGS III, LLC Registration of anatomical data sets
8678647, Mar 19 2002 Medtronic Navigation, Inc. Systems and methods for imaging large field-of-view objects
8679125, Sep 22 2010 Biomet Manufacturing, LLC Robotic guided femoral head reshaping
8679183, Jun 25 2010 Globus Medical Expandable fusion device and method of installation thereof
8682413, Nov 15 2006 STRYKER EUROPEAN HOLDINGS III, LLC Systems and methods for automated tracker-driven image selection
8684253, Jan 10 2007 Cilag GmbH International Surgical instrument with wireless communication between a control unit of a robotic system and remote sensor
8685098, Jun 25 2010 Globus Medical, Inc.; Globus Medical, Inc Expandable fusion device and method of installation thereof
8693730, Nov 15 2011 MACDONALD, DETTWILER AND ASSOCIATES INC Method of real-time tracking of moving/flexible surfaces
8694075, Dec 21 2009 STRYKER EUROPEAN HOLDINGS III, LLC Intra-operative registration for navigated surgical procedures
8696458, Feb 15 2008 THALES VISIONIX, INC Motion tracking system and method using camera and non-camera sensors
8700123, Oct 20 2008 The Johns Hopkins University Environment property estimaton and graphical display
8706086, Mar 28 2008 Telefonaktiebolaget L M Ericsson (publ) Identification of a manipulated or defect base station during handover
8706185, Oct 16 2003 Medtronic Navigation, Inc. Method and apparatus for surgical navigation of a multiple piece construct for implantation
8706301, Dec 31 2008 Intuitive Surgical Operations, Inc. Obtaining force information in a minimally invasive surgical procedure
8717430, Apr 26 2010 Medtronic Navigation, Inc. System and method for radio-frequency imaging, registration, and localization
8727618, Nov 22 2006 SIEMENS HEALTHINEERS AG Robotic device and method for trauma patient diagnosis and therapy
8734432, Oct 21 2008 Brainlab AG Integration of surgical instrument and display device for assisting in image-guided surgery
8738115, May 11 2010 SIEMENS HEALTHINEERS AG Method and apparatus for selective internal radiation therapy planning and implementation
8738181, Apr 16 2007 DEERFIELD IMAGING, INC Methods, devices, and systems for automated movements involving medical robots
8740882, Jul 30 2010 LG Electronics Inc Medical robotic system and method of controlling the same
8746252, May 14 2010 Intuitive Surgical Operations, Inc. Surgical system sterile drape
8749189, May 19 2005 Intuitive Surgical Operations, Inc. Software center and highly configurable robotic systems for surgery and other uses
8749190, May 19 2005 Intuitive Surgical Operations, Inc. Software center and highly configurable robotic systems for surgery and other uses
8761930, May 04 2004 Intuitive Surgical Operations, Inc. Tool grip calibration for robotic surgery
8764448, Sep 01 2010 Agency for Science, Technology and Research Robotic device for use in image-guided robot assisted surgical training
8771170, Aug 01 2008 MICROACCESS, INC Methods and apparatus for transesophageal microaccess surgery
8781186, May 04 2010 Analogic Corporation System and method for abdominal surface matching using pseudo-features
8781630, Oct 14 2008 University of Florida Research Foundation, Inc. Imaging platform to provide integrated navigation capabilities for surgical guidance
8784385, Oct 31 2008 GEARBOX, LLC Frozen piercing implements and methods for piercing a substrate
8786241, May 19 2005 Intuitive Surgical Operations, Inc. Software center and highly configurable robotic systems for surgery and other uses
8787520, Nov 27 2008 Hitachi, LTD Radiation imaging device
8792704, Oct 06 2010 NuVasive, Inc Imaging system and method for use in surgical and interventional medical procedures
8798231, Jul 27 2009 Shimadzu Corporation Radiographic apparatus
8800838, Aug 31 2005 Cilag GmbH International Robotically-controlled cable-based surgical end effectors
8808164, Mar 28 2008 Intuitive Surgical Operations, Inc Controlling a robotic surgical tool with a display monitor
8812077, Dec 22 2010 VIEWRAY TECHNOLOGIES, INC System and method for image guidance during medical procedures
8814793, Dec 03 2002 Respinor AS Respiration monitor
8816628, May 19 2005 Intuitive Surgical Operations, Inc. Software center and highly configurable robotic systems for surgery and other uses
8818105, Jul 14 2011 MIDCAP FUNDING IV TRUST, AS SUCCESSOR TO EXISTING ADMINISTRATIVE AGENT Image registration for image-guided surgery
8820605, Jan 31 2006 Cilag GmbH International Robotically-controlled surgical instruments
8821511, Mar 15 2007 STRYKER EUROPEAN HOLDINGS III, LLC Instrument guide for use with a surgical navigation system
8823308, May 19 2005 Intuitive Surgical Operations, Inc. Software center and highly configurable robotic systems for surgery and other uses
8827996, Apr 18 2002 Intuitive Surgical Operations, Inc. Methods for pluggable end-effectors of robotic surgical instruments
8828024, Jul 12 2007 Board of Regents of the University of Nebraska Methods, systems, and devices for surgical access and procedures
8830224, Dec 31 2008 Intuitive Surgical Operations, Inc Efficient 3-D telestration for local robotic proctoring
8834489, Jan 24 2005 Intuitive Surgical Operations, Inc. Modular manipulator support for robotic surgery
8834490, Aug 28 2001 Bonutti Skeletal Innovations LLC Method for robotic arthroplasty using navigation
8838270, Dec 22 2005 Intuitive Surgical Operations, Inc. Synchronous data communication
8844789, Jan 31 2006 Cilag GmbH International Automated end effector component reloading system for use with a robotic system
8855822, Mar 23 2012 Innovative Surgical Solutions, LLC Robotic surgical system with mechanomyography feedback
8858598, Dec 12 2008 Globus Medical, Inc. Lateral spinous process spacer with deployable wings
8860753, Apr 13 2004 UNIVERSITY OF GEORGIA RESEARCH FOUNDATION, INC , THE Virtual surgical system and methods
8864751, Dec 20 2005 Intuitive Surgical Operations, Inc. Control system for reducing internally generated frictional and inertial resistance to manual positioning of a surgical manipulator
8864798, Jan 18 2008 Globus Medical, Inc Transverse connector
8864833, Sep 30 2011 Globus Medical, Inc Expandable fusion device and method of installation thereof
8867703, Dec 18 2002 Varian Medical Systems, Inc. Multi-mode cone beam CT radiotherapy simulator and treatment machine with a flat panel imager
8870880, Apr 12 2010 Globus Medical, Inc.; Globus Medical, Inc Angling inserter tool for expandable vertebral implant
8876866, Dec 13 2010 Globus Medical, Inc Spinous process fusion devices and methods thereof
8880223, Jul 16 2012 FLORIDA INSTITUTE FOR HUMAN AND MACHINE COGNITION, INC Anthro-centric multisensory interface for sensory augmentation of telesurgery
8882803, Apr 01 2009 Globus Medical, Inc. Orthopedic clamp and extension rod
8883210, May 14 2010 Musculoskeletal Transplant Foundation Tissue-derived tissuegenic implants, and methods of fabricating and using same
8888821, Apr 05 2012 Warsaw Orthopedic, Inc.; Warsaw Orthopedic, Inc Spinal implant measuring system and method
8888853, Oct 15 2009 Globus Medical Inc. Expandable fusion device and method of installation thereof
8888854, Oct 15 2009 Globus Medical, Inc. Expandable fusion device and method of installation thereof
8894652, Aug 29 2008 Globus Medical, Inc. Devices and methods for treating bone
8894688, Oct 27 2011 Globus Medical Inc.; Globus Medical, Inc Adjustable rod devices and methods of using the same
8894691, Apr 08 2004 Globus Medical, Inc. Polyaxial screw
8906069, Dec 07 2009 Globus Medical Inc. Transforaminal prosthetic spinal disc apparatus
8964934, Apr 25 2013 Cone beam CT scanning
8992580, Dec 01 2008 MAZOR ROBOTICS LTD Robot guided oblique spinal stabilization
8996169, Dec 29 2011 MAKO SURGICAL CORP Neural monitor-based dynamic haptics
9001963, Aug 06 2009 Koninklijke Philips N.V.; Koninklijke Philips Electronics N V Method and apparatus for generating computed tomography images with offset detector geometries
9002076, Apr 15 2008 Medtronic, Inc Method and apparatus for optimal trajectory planning
9044190, Sep 25 2006 MAZOR ROBOTICS LTD C-arm computerized tomography system
9107683, Aug 15 2012 Intuitive Surgical Operations, Inc Systems and methods for cancellation of joint motion using the null-space
9125556, May 14 2012 MAZOR ROBOTICS LTD Robotic guided endoscope
9131986, Apr 16 2007 DEERFIELD IMAGING, INC Methods, devices, and systems for non-mechanically restricting and/or programming movement of a tool of a manipulator along a single axis
9215968, Oct 28 2011 Ovesco Endoscopy AG Magnetic end effector and device for guiding and positioning the same
9308050, Apr 01 2011 KB Medical SA Robotic system and method for spinal and other surgeries
9380984, May 26 2009 Tsinghua University; Nuctech Company Limited Computer tomography imaging device and method
9393039, Dec 17 2003 BRAINLAB AB Universal instrument or instrument set for computer guided surgery
9398886, Mar 19 2002 Medtronic Navigation, Inc. Systems and methods for imaging large field-of-view objects
9398890, Jan 31 2013 GE Medical Systems Global Technology Company, LLC Geometry calibration algorithm for large flat module detector CT scanner
9414859, Apr 19 2013 Warsaw Orthopedic, Inc.; Warsaw Orthopedic, Inc Surgical rod measuring system and method
9420975, Jul 09 2010 SIEMENS HEALTHINEERS AG Imaging facility and radiation therapy device
9492235, Jun 01 2012 Intuitive Surgical Operations, Inc Manipulator arm-to-patient collision avoidance using a null-space
9592096, Nov 30 2011 MEDTECH Robotic-assisted device for positioning a surgical instrument relative to the body of a patient
9750465, Dec 10 2009 Koninklijke Philips Electronics N V Scanning system for differential phase contrast imaging
9757203, Jun 01 2012 Intuitive Surgical Operations, Inc. Manipulator arm-to-patient collision avoidance using a null-space
9795354, Oct 31 2013 CEFLA SOCIETÁ COOPERATIVA Method and apparatus for increasing field of view in cone-beam computerized tomography acquisition
9814535, Dec 01 2008 MAZOR ROBOTICS LTD. Robot guided oblique spinal stabilization
9820783, Jan 13 2010 JCBD, LLC Integrated electromagnetic implant guidance systems and methods of use for sacroiliac joint fusion
9833265, Jan 13 2010 JCBD, LLC Integrated electromagnetic implant guidance systems and methods of use for sacroiliac joint fusion
9848922, Oct 09 2013 NuVasive, Inc Systems and methods for performing spine surgery
9925011, Jul 26 2013 ABB Schweiz AG Surgical robot system
9931025, Sep 30 2016 AURIS HEALTH, INC Automated calibration of endoscopes with pull wires
20010036302,
20020035321,
20040068172,
20040076259,
20050096502,
20050143651,
20050171558,
20060100610,
20060173329,
20060184396,
20060241416,
20060291612,
20070015987,
20070016009,
20070021738,
20070038059,
20070073133,
20070156121,
20070156157,
20070167712,
20070233238,
20070244488,
20080004523,
20080013809,
20080033283,
20080046122,
20080082109,
20080108912,
20080108991,
20080109012,
20080144906,
20080161680,
20080161682,
20080177203,
20080200794,
20080214922,
20080228068,
20080228196,
20080235052,
20080269596,
20080287771,
20080287781,
20080300477,
20080300478,
20080302950,
20080306490,
20080319311,
20090012509,
20090030428,
20090080737,
20090185655,
20090198121,
20090216113,
20090228019,
20090259123,
20090259230,
20090264899,
20090281417,
20100022874,
20100039506,
20100125286,
20100130986,
20100228117,
20100228265,
20100249571,
20100274120,
20100280363,
20100331858,
20110022229,
20110077504,
20110098553,
20110137152,
20110213384,
20110224684,
20110224685,
20110224686,
20110224687,
20110224688,
20110224689,
20110224825,
20110230967,
20110238080,
20110276058,
20110282189,
20110286573,
20110295062,
20110295370,
20110306986,
20120035507,
20120046668,
20120051498,
20120053597,
20120059248,
20120071753,
20120108954,
20120136372,
20120143084,
20120184839,
20120197182,
20120226145,
20120235909,
20120245596,
20120253332,
20120253360,
20120256092,
20120294498,
20120296203,
20130006267,
20130016889,
20130030571,
20130035583,
20130060146,
20130060337,
20130094742,
20130096574,
20130113791,
20130116706,
20130131695,
20130144307,
20130158542,
20130165937,
20130178867,
20130178868,
20130178870,
20130204271,
20130211419,
20130211420,
20130218142,
20130223702,
20130225942,
20130225943,
20130231556,
20130237995,
20130245375,
20130261640,
20130272488,
20130272489,
20130274761,
20130281821,
20130296884,
20130303887,
20130307955,
20130317521,
20130325033,
20130325035,
20130331686,
20130331858,
20130331861,
20130342578,
20130345717,
20130345757,
20140001235,
20140012131,
20140031664,
20140046128,
20140046132,
20140046340,
20140049629,
20140058406,
20140073914,
20140080086,
20140081128,
20140088612,
20140094694,
20140094851,
20140096369,
20140100587,
20140121676,
20140128882,
20140130810,
20140135796,
20140142591,
20140142592,
20140148692,
20140163581,
20140171781,
20140171900,
20140171965,
20140180308,
20140180309,
20140187915,
20140188132,
20140194699,
20140221819,
20140222023,
20140228631,
20140234804,
20140257328,
20140257329,
20140257330,
20140257332,
20140275760,
20140275985,
20140276931,
20140276940,
20140276944,
20140288413,
20140299648,
20140303434,
20140303643,
20140305995,
20140309659,
20140316436,
20140323803,
20140324070,
20140330288,
20140364720,
20140371577,
20150039034,
20150085970,
20150146847,
20150150524,
20150196261,
20150213633,
20150335480,
20150342647,
20160005194,
20160166329,
20160235480,
20160249990,
20160302871,
20160320322,
20160331335,
20170135770,
20170143284,
20170143426,
20170156816,
20170202629,
20170212723,
20170215825,
20170215826,
20170215827,
20170231710,
20170258426,
20170273748,
20170296277,
20170360493,
20170360512,
20190038366,
20190228859,
20190357986,
20200323654,
D631966, Nov 10 2009 Globus Medical, Inc Basilar invagination implant
JP2006500182,
RE42194, Sep 24 1997 Medtronic Navigation, Inc. Percutaneous registration apparatus and method for use in computer-assisted surgical navigation
RE42226, Sep 24 1997 Medtronic Navigation, Inc. Percutaneous registration apparatus and method for use in computer-assisted surgical navigation
RE44305, Sep 24 1997 Medtronic Navigation, Inc. Percutaneous registration apparatus and method for use in computer-assisted surgical navigation
RE44392, Mar 16 2001 Warsaw Orthopedic, Inc. Spinal fixation system and related methods
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